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Numerical modelling of lateral stress on integral abutments due to cyclic loading

机译:循环荷载作用下整体桥台侧向应力数值模拟

摘要

The integral bridge concept eliminates problems associated with expansion joints and bearings used on conventional bridges. However, integral structures are not free from problems, and of particular concern is the magnitude of lateral soil stress which acts on the abutments. The cyclic nature of abutment displacement, caused by thermal loading of the deck, results in increased lateral soil stress from the granular backfill. Previous experiments investigated the fundamental behaviour of a granular soil element under integral bridge loading. No existing constitutive soil model replicated this behaviour, and therefore a soil model has been developed based upon this data. It was designed to account for the changes in secant stiffness and vertical strain due to the density and rolling/sliding behaviour of soil particles at the active state, found to be important in the previous research. The model was implemented into a finite difference method program, and initially validated by modelling the experimental triaxial tests. Subsequent modelling of centrifuge tests of bridge abutments, carried out by independent researchers, allowed the soil model to be validated at system level. After validation and testing, the model was considered suitable for predicting the lateral stress profile acting on integral bridge abutments and used in a parametric study. This highlighted that the value of wall friction coefficient is particularly significant in the system behaviour. The centrifuge test is an idealised system where only rotation/flexure is possible, so a spread base abutment was modelled to investigate the predicted stress profile for an in-service bridge. These were shown to be significantly different to those prescribed by BA42/96, both in shape and magnitude. Additionally, modelling daily cycles results in a different profile to yearly cycles. This research has shown that the soil model developed can provide good estimates of lateral soil stress. This can be used to further investigate soil loads acting on integral bridge abutments with the aim of improving the design of such structures.
机译:整体式桥梁概念消除了与传统桥梁上使用的伸缩缝和轴承相关的问题。然而,整体结构并非没有问题,特别令人关注的是作用在基台上的侧向土壤应力的大小。由甲板的热负荷引起的桥墩位移的周期性,导致颗粒回填产生的侧向土壤应力增加。先前的实验研究了整体桥梁荷载作用下粒状土元素的基本行为。没有现有的本构土壤模型可以复制这种行为,因此,已基于该数据开发了土壤模型。它的设计目的是解决由于在活跃状态下土壤颗粒的密度和滚动/滑动行为而导致的割线刚度和垂直应变的变化,这在先前的研究中很重要。该模型被实现为有限差分方法程序,并通过对实验性三轴测试进行建模进行了初步验证。由独立研究人员进行的桥墩离心机试验随后建模,使土壤模型可以在系统级别进行验证。经过验证和测试后,该模型被认为适合于预测作用在整体桥基台上的侧向应力曲线,并用于参数研究。这突出了壁摩擦系数的值在系统行为中特别重要。离心机测试是一种理想的系统,在该系统中只能进行旋转/挠曲,因此对展开式基台进行了建模,以研究在役桥梁的预计应力分布。这些在形状和大小上均与BA42 / 96所规定的明显不同。此外,对每日周期进行建模会导致与年度周期有所不同。这项研究表明,开发的土壤模型可以很好地估算侧向土壤应力。这可用于进一步研究作用在整体式桥台上的土壤载荷,以改善此类结构的设计。

著录项

  • 作者

    Banks J.R;

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  • 年度 2009
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  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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